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Efficiency improvement study for small wind turbines through flow control

机译:通过流量控制提高小型风力发电机效率的研究

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摘要

In this study, a constant suction technique for controlling boundary layer separation at low Reynolds numbers was designed and tested. This was later implemented on small wind turbines. Small wind turbines need to operate in low wind speeds, that is, in low Reynolds number regimes - typically in the range 10~4-10~5. Airfoils are prone to boundary layer separation in these conditions, leading to a substantial drop in aerodynamic performance of the blades. Under these conditions turbines will have reduced energy output. This paper presents experimental results of applying surface-suction over the suction-surface of airfoils for controlling boundary layer separation. The Reynolds numbers for the experiments are kept in the range 8 × 10~4-5 × 10~5. The air over the surface of the airfoil is drawn into the airfoil through a slit. It is found that the lift coefficient of the airfoils increases and the drag reduces. Based on the improved airfoil characteristics, an analysis of increase in Coefficient of Power (C_P), versus input power for a small wind turbine blade with constant suction is presented.
机译:在这项研究中,设计并测试了用于控制低雷诺数边界层分离的恒定抽吸技术。后来在小型风力涡轮机上实现了此功能。小型风力发电机需要在低风速下运行,即在低雷诺数范围内运行-通常在10〜4-10〜5范围内。在这些条件下,翼型易于边界层分离,从而导致叶片的空气动力学性能大幅下降。在这些条件下,涡轮机的能量输出会减少。本文介绍了在机翼吸力表面施加表面吸力以控制边界层分离的实验结果。实验的雷诺数保持在8×10〜4-5×10〜5的范围内。翼型表面上的空气通过狭缝被吸入翼型中。发现翼型的升力系数增加而阻力减小。基于改进的翼型特性,提出了具有恒定吸力的小型风力涡轮机叶片的功率系数(C_P)相对于输入功率的增加的分析。

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